Application of Chemical Storage in Smart Grid and Analysis on Loss Reduction

Article Preview

Abstract:

Because of the characteristic of highly controllability and modularization, battery energy storage could be widely applied in the distributed renewable energy generation for improving the reliability of power supply and smoothing the load. The paper introduces the chemical energy storage technology especially the flow battery and designs the model of smart grid with the chemical energy storage devices. Then the paper gives the interface circuit between smart grid and energy storage, and simulates an actual distribution network with chemical energy storage device, the result shows that if the energy storage battery with proper capacity was connected to the distribution network at a proper position, it was effective in reducing the line loss.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 236-238)

Pages:

872-875

Citation:

Online since:

May 2011

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2011 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Skyllas-Kazacosm, Peng C, Cheng M. Evaluation of precipitation inhibitors for supersaturated vanady electrolytes for the vanadium redox battery[J]. Electrochemical and solid State Letters, 1999, 2(3): 121-122.

DOI: 10.1149/1.1390754

Google Scholar

[2] Price. A, Mccarthy. L. Power generation using renewables and the Regenesys energy storage system [R]. Imeche Semin Publ, 2000, 15, 195-206.

Google Scholar

[3] P.J. Hall, E.J. Bain, Energy-storage technologies and electricity generation, Energy Policy, vol. 36, pp.4352-4355, (2008).

DOI: 10.1016/j.enpol.2008.09.037

Google Scholar

[4] K. C. Divya, J. Østergaard, Battery energy storage technology for power sytems-An overview, Electric Power Systems Research, vol. 79, pp.511-520, (2009).

DOI: 10.1016/j.epsr.2008.09.017

Google Scholar

[5] Anderson M D, Carr D S. Battery energy storage technologies [J].Proceedings of the IEEE, 1993, 81(3): 475-479.

Google Scholar

[6] Ibak, Idetar, Suzukik. Analysis and operational records of NAS battery [C], Universities Power Engineering Conference. Newcastle, UK, 2006: 491-495.

Google Scholar

[7] I. Hadjipaschalis, A. Poullikkas, and V. Efthimiou, Overview of current and future energy storage technologies for electric power applications, Renewable and Sustainable Energy Reviews, vol. 13, pp.1513-1522, (2009).

DOI: 10.1016/j.rser.2008.09.028

Google Scholar

[8] Akira Shibata, Kanji Sato. Development of vanadium redox flow battery for electricity storage[J]. Power Engineering Journal, 1999, 13(3): 130-135.

DOI: 10.1049/pe:19990305

Google Scholar

[9] Miyake S, Tokuda N. Vanadium redox-flow battery for a variety of applications[C]. Power Engineering Society Summer Meeting, Vancouver, BC, Canada, 2001: 450-451.

DOI: 10.1109/pess.2001.970067

Google Scholar

[10] Hund T, Clark N, Baca W. Testing and evaluation of energy storage devices[C]. DOE Energy Storage Systems Research Program Annual Peer Review, Washington, DC, (2008).

Google Scholar

[11] YAO Yao, LIU Dong, LIAO Huaiqing, HE Weiguo, ZHANG Yu, BAO Hailong. Ana lysis on Loss Reducti on of D istr i buti on Network with Energy Storage Ba ttery [J]. East China Electric Power, 2010, 38(5): 677-680.

Google Scholar

[12] R. Zogg, T. Lawrence, D. Ofer, J. Brodrick, Distributed Energy Storage, ASHRAE Journal, vol. 49, p.90, 92, 94, (2007).

Google Scholar

[13] Kamibayashim, Nicholsdk, Oshimat. Development update of the NAS battery[C]. IEEE/PES Transmission and Distribution Conference and Exhibition. Yokohama, Japan, 2002: 16642-1668.

Google Scholar